3DRegNet: A Deep Neural Network for 3D Point Registration
Gonçalo Dias Pais, Srikumar Ramalingam, Venu Madhav Govindu, Jacinto C. Nascimento, Rama Chellappa, Pedro Miraldo
摘要
We present 3DRegNet, a novel deep learning architecture for the registration of 3D scans. Given a set of 3D point correspondences, we build a deep neural network to address the following two challenges: (i) classification of the point correspondences into inliers/outliers, and (ii) regression of the motion parameters that align the scans into a common reference frame. With regard to regression, we present two alternative approaches: (i) a Deep Neural Network (DNN) registration and (ii) a Procrustes approach using SVD to estimate the transformation. Our correspondence-based approach achieves a higher speedup compared to competing baselines. We further propose the use of a refinement network, which consists of a smaller 3DRegNet as a refinement to improve the accuracy of the registration. Extensive experiments on two challenging datasets demonstrate that we outperform other methods and achieve state-of-the-art results. The code is available at https://github.com/3DVisionISR/ 3DRegNet.
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引用它的顶会 Paper39
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它引用的顶会 Paper3
- Deep Closest Point: Learning Representations for Point Cloud RegistrationYue Wang, Justin SolomonICCV 2019 · 被引用 1,026 次
- DeepVCP: An End-to-End Deep Neural Network for Point Cloud RegistrationWeixin Lu, Guowei Wan, Yao Zhou, Xiangyu Fu 等ICCV 2019 · 被引用 313 次
- Minimal Solvers for 3D Scan Alignment With Pairs of Intersecting LinesAndré Mateus, Srikumar Ramalingam, Pedro MiraldoCVPR 2020
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